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      Perspective on the development of high performance flexible piezoelectric energy harvesters

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          Abstract

          Overview of the piezoelectric energy harvetsing-materials, device architectures, and different applications.

          Abstract

          Piezoelectric energy harvesting is the most effective technique to convert ubiquitous mechanical energy into electricity in comparison to other methods such as triboelectric and electromagnetic based mechanical energy harvesting. This is owing to the high electromechanical coefficient, stability under humidity and environmental changes and suitable range of temperature stability of piezoelectrics. To overcome the limitations of brittleness of piezoceramics and bring the compatibility to the flexible electronics, research on flexible piezoelectric energy harvesters (FPEHs) has become a trend now. Wide varieties of piezoelectric materials are explored in this regard which include conventional ceramic oxides, polymers, biomaterials, etc. Besides, various device designs have enabled performance enhancement and brought compatibility to the different applications. Numerous self-powered sensors based on the FPEHs employed for biomedical sensing, wireless data transmission, environmental remediation, etc. have made this sector of research highly attractive. This review summarizes varieties of piezoelectric materials explored with regard to the FPEHs so far. Then various FPEH device designs are categorically described. Further, possible applications of FPEHs are summarized. Altogether, this review article deals with the summary of materials, device designs and possible applications which gives uniqueness to this article. Performances of different devices are analyzed and discussed. Based on that, future challenges and a roadmap for sustainable FPEH development are outlined.

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          Most cited references176

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          Flexible triboelectric generator

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            Piezoelectric nanogenerators based on zinc oxide nanowire arrays.

            We have converted nanoscale mechanical energy into electrical energy by means of piezoelectric zinc oxide nanowire (NW) arrays. The aligned NWs are deflected with a conductive atomic force microscope tip in contact mode. The coupling of piezoelectric and semiconducting properties in zinc oxide creates a strain field and charge separation across the NW as a result of its bending. The rectifying characteristic of the Schottky barrier formed between the metal tip and the NW leads to electrical current generation. The efficiency of the NW-based piezoelectric power generator is estimated to be 17 to 30%. This approach has the potential of converting mechanical, vibrational, and/or hydraulic energy into electricity for powering nanodevices.
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              On Maxwell's displacement current for energy and sensors: the origin of nanogenerators

              Zhong Wang (2017)
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                Author and article information

                Contributors
                Journal
                JMCCCX
                Journal of Materials Chemistry C
                J. Mater. Chem. C
                Royal Society of Chemistry (RSC)
                2050-7526
                2050-7534
                February 24 2022
                2022
                : 10
                : 8
                : 2905-2924
                Affiliations
                [1 ]Nanomaterials and System Lab, Major of Mechatronics Engineering, Faculty of Applied Energy System, Jeju National University, Jeju 632-43, South Korea
                [2 ]Research Institute of Energy New Industry, Jeju National University, Jeju 632-43, South Korea
                Article
                10.1039/D1TC06089A
                d761f484-ddfe-4ef3-a3ce-316f630e05b7
                © 2022

                http://rsc.li/journals-terms-of-use

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